Claims
        
                - 1. An optical device, comprising: 
a polarizing beamsplitter, a first path being defined through the polarizing beamsplitter for light in a first polarization state; at least one imager disposed to reflect light back to the polarizing beamsplitter, portions of light received by the at least one imager being polarization rotated, polarization rotated light propagating along a second path from the imager and through the polarizing beamsplitter; and an astigmatism compensating element disposed on the second path to reduce astigmatism in the polarization rotated light caused by the polarizing beamsplitter.
 
                - 2. A device as recited in claim 1, further comprising a light source to generate the light and light conditioning optics to condition the light before reaching the polarizing beamsplitter.
 
                - 3. A device as recited in claim 1, further comprising a projection lens system to project image light from the at least one imager.
 
                - 4. A device as recited in claim 3, wherein the astigmatism compensating element reduces the astigmatism to a value less than a depth of field of the projection lens system.
 
                - 5. A device as recited in claim 1, further comprising a controller coupled to the at least one imager to control an image imposed on the light incident on the at least one imager.
 
                - 6. A device as recited in claim 1, wherein the polarizing beamsplitter is a Cartesian polarizing beamsplitter having a structural orientation defining fixed axes of polarization and further comprising imager illumination optics having an f-number equal to or less than 2.5, the device having a dynamic range of at least 100 to 1 over projected color bands in the visible light range.
 
                - 7. A device as recited in claim 1, wherein the polarizing beamsplitter includes a multilayer, polarization sensitive reflective film having a relatively low refractive index and covers on either side of the polarization sensitive reflective film having a relatively high refractive index.
 
                - 8. A device as recited in claim 7, wherein the multilayer, polarization sensitive reflective film lies in an x-y plane and has a thickness in a z-direction, and the film has a z-refractive index substantially matched to one of the x-and y-refractive indices.
 
                - 9. A device as recited in claim 7, wherein the astigmatism compensating element includes a plate of high index material having a refractive index higher than a refractive index of material on at least one side of the plate of high index material.
 
                - 10. A device as recited in claim 9, wherein the plate of high index material has a refractive index higher than a refractive index of the covers, the plate of high index material being disposed between the polarization sensitive reflective film and one of the covers.
 
                - 11. A device as recited in claim 7, wherein the astigmatism compensating element includes a wedged element in the polarizing beamsplitter between the polarization sensitive reflective film and one of the covers.
 
                - 12. A device as recited in claim 11, wherein the wedged element has a refractive index lower than the refractive index of the covers.
 
                - 13. A device as recited in claim 11, wherein the wedged element is a wedged adhesive layer attaching the one of the covers to the polarization sensitive reflective film.
 
                - 14. A device as recited in claim 1, further comprising a color separating prism disposed to receive light output from the polarizing beamsplitter along the first path and wherein the at least one imager includes multiple imagers disposed proximate respective color output faces of the color separating prism.
 
                - 15. A device as recited in claim 14, wherein the color separating prism includes at least first and second color separating elements, the first color separating element being closer to the polarizing beamsplitter than at least the second color separating element, the first and second color separating elements being separated by gap layer of material having a refractive index lower than a refractive index of the color separating elements, a thickness of the gap layer being selected to reduce astigmatism arising in the polarizing beamsplitter.
 
                - 16. A device as recited in claim 15, wherein the first gap layer is an air gap having a thickness of at least at 50 μm.
 
                - 17. A device as recited in claim 15, wherein the first color separating element is made of two parts separated by a second gap layer, the second gap layer positioned so as to be outside a path traveled through the first color separating element by light not separated by the first color separating element, the second gap layer having a thickness selected to reduce astigmatism arising in the polarizing beamsplitter for light in a wavelength range separated by the first light separating element.
 
                - 18. A device as recited in claim 17, wherein the second gap layer is an air gap.
 
                - 19. A device as recited in claim 14, further comprising a wedge prism disposed between the color separating prism and the polarizing beamsplitter, a third gap layer, between the wedge prism and the color separating prism, having a thickness selected to reduce astigmatism arising in the polarizing beamsplitter.
 
                - 20. A device as recited in claim 19, wherein the thickness of the third gap layer is selected to substantially correct the astigmatism arising in the polarizing beamsplitter.
 
                - 21. A device as recited in claim 19, wherein the color separating prism includes a first color separating element and at least a second color separating element, the first color separating element being closer to the wedge prism than the at least a second color separating element, the first and second color separating elements being separated by a first gap layer, thicknesses of the first and third gap layers being selected to substantially correct astigmatism arising in the polarizing beamsplitter.
 
                - 22. A device as recited in claim 14, wherein the color separating prism separates light into different colors in a plane approximately perpendicular to a reflection plane of the polarizing beamsplitter.
 
                - 23. A device as recited in claim 14, wherein the color separating prism separates light into different colors in a plane approximately parallel to a reflection plane of the polarizing beamsplitter.
 
                - 24. A device as recited in claim 14, wherein the color separating prism includes at least first and second color separating elements, the first color separating element being closer to the polarizing beamsplitter than at least the second color separating element, a plate, formed from a first material having a refractive index higher than a refractive index of at least one of the first and second color separating elements, being disposed between the first and second color separating elements.
 
                - 25. A device as recited in claim 24, wherein the plate of the first material has a thickness selected to reduce astigmatism arising in the polarizing beamsplitter.
 
                - 26. A device as recited in claim 24, wherein the first color separating element is made of two parts separated by a plate of a second material different from a material of the first color separating element, the plate of second material being positioned so as to be outside a path traveled by light not separated by the first color separating element.
 
                - 27. A device as recited in claim 26, a width of the plate of second material being selected to reduce astigmatism arising in the polarizing beamsplitter for light in a wavelength range separated by the first light separating element.
 
                - 28. A device as recited in claim 26, wherein the second material is the same as the first material.
 
                - 29. A device as recited in claim 1, further comprising a color separating element for separating the light into at least two color bands and an x-cube combining light in the at least two color bands, at least a respective reflective polarizing beamsplitter and a respective imager disposed between the color separating element and the x-cube combiner for each of the at least two color bands, the x-cube combiner including astigmatism-reducing slabs of material having a refractive index different from a refractive index of x-cube prisms forming the x-cube.
 
                - 30. A device as recited in claim 29, wherein the astigmatism-reducing slabs are formed of material having a refractive index lower than the refractive index of the x-cube prisms.
 
                - 31. A device as recited in claim 1, wherein the at least one imager includes two imagers and further comprising a dichroic beamsplitter disposed between the polarizing beamsplitter and the two imagers, the dichroic beamsplitter including first and second prisms having diagonal bases and formed from material of a first refractive index, a dichroic film between the diagonal bases of the first and second prisms, and a first layer having a refractive index higher than the first refractive index disposed between the dichroic film and the base of the first prism and a second layer having a refractive index higher than the first refractive index disposed between the dichroic film and the base of the second prism.
 
                - 32. A device as recited in claim 1, wherein the astigmatism compensating element includes a first film on the second path, the first film being disposed between first and second covers, the first and second covers having a refractive index higher than a refractive index of the first film.
 
                - 33. A device as recited in claim 32, wherein a rotation axis of the first film relative to the second path is perpendicular to a rotation axis of a polarization sensitive reflection film in the polarizing beamsplitter.
 
                - 34. A device as recited in claim 32, wherein the first film is a multilayer, polarization sensitive, reflective film.
 
                - 35. An optical device, comprising: 
polarizing beamsplitter means directing light in a first polarization state along a first path and for directing light, in a second polarization state orthogonal to the first polarization state, along a second path different from the first path; light imaging means for imposing an image on light by rotating polarization of portions of the light and reflecting the light to the polarizing beamsplitter, image light propagating along the second path through the polarizing beamsplitter means; and astigmatism correcting means disposed on the second path to reduce astigmatism in the image light caused by the polarizing beamsplitter means.
 
                - 36. A projection system, comprising: 
a light source to generate light; conditioning optics to condition the light from the light source; an imaging core to impose on image on conditioned light from the conditioning optics to form image light, the imaging core including a polarizing beamsplitter and at least one imager, at least one element in the imaging core adapted to reduce astigmatism in the image light; and a projection lens system to project the astigmatism-reduced image light from the imaging core.
 
                - 37. A device as recited in claim 36, wherein the at least one element in the astigmatism imaging core adapted to reduce astigmatism reduces the astigmatism to a value less than a depth of field of the projection lens system.
 
                - 38. A system as recited in claim 36, further comprising a controller coupled to the at least one imager to control the image imposed on light incident on the at least one imager.
 
                - 39. A system as recited in claim 36, wherein the polarizing beamsplitter is a Cartesian polarizing beamsplitter having a structural orientation defining fixed axes of polarization and the light conditioning optics have an f-number equal to or less than 2.5, the system having a dynamic range of at least 100 to 1 over projected color bands in the visible light range.
 
                - 40. A system as recited in claim 36, wherein the imaging core is telecentric.
 
                - 41. A system as recited in claim 36, wherein the polarizing beamsplitter includes a multilayer, polarization sensitive reflective film having a relatively low refractive index and covers on either side of the polarization sensitive reflective film having a relatively high refractive index, and the astigmatism arises at least partly in the polarizing beamsplitter.
 
                - 42. A system as recited in claim 41, wherein the polarizing beamsplitter includes a wedge disposed between the multilayer, polarization sensitive reflective film and one of the covers, the wedge having a refractive index less than the refractive index of the covers.
 
                - 43. A system as recited in claim 41, wherein the polarizing beamsplitter includes a plate disposed between the multilayer, polarization sensitive reflective film and one of the covers, the plate having a refractive index higher than the refractive index of the covers.
 
                - 44. A system as recited in claim 41, wherein the imager core includes an astigmatism-reducing cube disposed between the polarizing beamsplitter and the projection lens system, the astigmatism-reducing cube including a layer having a layer refractive index disposed between covers having a cover refractive index different from the layer refractive index, the layer being tilted relative to a propagation direction of the image light.
 
                - 45. A system as recited in claim 44, wherein the layer is a polarizing layer.
 
                - 46. A system as recited in claim 36, further comprising a color separator disposed between the polarization beamsplitter and the at least one imager.
 
                - 47. A system as recited in claim 46, wherein the color separator is a color separating prism having at least first and second color separating elements separated by a gap layer of material having a refractive index different from a refractive index of the first and second color separating elements, a thickness of the gap layer being selected to reduce astigmatism in the image light.
 
                - 48. A system as recited in claim 47, wherein the gap layer has a refractive index lower than the refractive index of the first and second color separating elements.
 
                - 49. A system as recited in claim 47, wherein the gap layer has a refractive index higher than the refractive index of the first and second color separating elements.
 
                - 50. A system as recited in claim 47, wherein the first color separating element is made of two parts separated by a second gap layer having a refractive index different from the refractive index of the first color separating element, and having a thickness selected to reduce astigmatism in the image light.
 
                - 51. A system as recited in claim 50, wherein the second gap layer has a refractive index lower than the refractive index of the first color separating element.
 
                - 52. A system as recited in claim 50, wherein the second gap layer has a refractive index higher than the refractive index of the first color separating element.
 
                - 53. A system as recited in claim 47, further comprising a wedge prism disposed between the color separating prism and the polarizing beamsplitter, a third gap layer between the wedge prism and the color separating prism, having a refractive index different from wedge prism, having a thickness selected to reduce astigmatism.
 
                - 54. A system as recited in claim 47, wherein the color separating prism separates light into different colors in a plane approximately perpendicular to a reflection plane of the polarizing beamsplitter.
 
                - 55. A system as recited in claim 47, wherein the color separating prism separates light into different colors in a plane approximately parallel to a reflection plane of the polarizing beamsplitter.
 
                - 56. A system as recited in claim 36, wherein the imaging core further comprises an x-cube to combine light in at least two color bands, the x-cube combiner including astigmatism-reducing slabs of material having a refractive index different from a refractive index of x-cube prisms forming the x-cube.
 
                - 57. A system as recited in claim 56, wherein the astigmatism-reducing slabs are formed of material having a refractive index lower than the refractive index of the x-cube prisms.
 
                - 58. A device as recited in claim 36, wherein the imaging core includes two imagers and a dichroic beamsplitter disposed between the polarizing beamsplitter and the two imagers, the dichroic beamsplitter including first and second prisms formed from material of a first refractive index, a dichroic film disposed between the diagonal bases of the first and second prisms, a first layer having a refractive index higher than the first refractive index disposed between the dichroic film and the first prism and a second layer having a refractive index higher than the first refractive index disposed between the dichroic film and the second prism.
 
        
                
                        RELATED CASES
        [0001] This is a continuation application of U.S. Ser. No. 09/878,559, filed on Jun. 11, 2001 and incorporated herein by reference.
                
                
                
                        Continuations (1)
        
            
                
                     | 
                    Number | 
                    Date | 
                    Country | 
                
            
            
    
        | Parent | 
            09878559 | 
        Jun 2001 | 
        US | 
    
    
        | Child | 
            10740287 | 
        Dec 2003 | 
        US |